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Experimental study on inactivation of Escherichia coli by atmospheric pressure non-equilibrium plasma combined with photocatalysis

机译:常压非平衡等离子体联合光催化灭活大肠杆菌的实验研究

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In order to improve the sterilization effect and energy efficiency of atmospheric pressure non-equilibrium plasma (APNP), a synergistic treatment system of APNP combined with photocatalysis was established to inactivate Escherichia coli TiO2 is selected as the photocatalyst The colony counting result indicates that APNP treatment combined with photocatalysis has an enhancement effect on sterilization. The enhancement factorq is up to 80.2%. The SEM images show that 30s APNP treatment combined with photocatalysis causes greater structural damage than traditional APNP treatment. The discoloration photometric suggests that up to 120% more ROS are produced in APNP combined with photocatalysis. Optical emission spectra show that photocatalysis leads to weakening of the ionization process and thus weakens the plasma discharge. In accordance with the infrared thermal images, temperature rise in APNP combined with photocatalysis is 4 degrees C lower than that in traditional APNP treatment, which may enlarge the application area of biomedical field. (C) 2018 The Japan Society of Applied Physics
机译:为了提高大气压非平衡等离子体(APNP)的杀菌效果和能效,建立了APNP与光催化相结合的协同处理体系,以灭活大肠杆菌TiO2为光催化剂。菌落计数结果表明APNP处理与光催化结合可以增强杀菌效果。增强因子q高达80.2%。扫描电镜图像表明,与传统的APNP处理相比,30s APNP处理与光催化相结合会引起更大的结构破坏。变色光度法表明,结合光催化作用,APNP中最多可产生120%的ROS。光学发射光谱表明光催化导致电离过程的减弱,从而减弱了等离子体的放电。根据红外热像图,与传统的APNP处理相比,APNP结合光催化的温升降低了4摄氏度,这可能会扩大生物医学领域的应用范围。 (C)2018日本应用物理学会

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